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Cyclic indentation behavior of metal-ceramic nanolayered composites

机译:金属陶瓷纳米复合材料的循环压痕行为

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摘要

The indentation behavior of metal/ceramic nanolayered composites is studied numerically using the finite element method. Attention is devoted to cyclic response under fixed maximum and minimum loads, with the primary objective of examining the evolving plastic deformation in the ductile metal constrained by the hard ceramic layers. The axisymmetric model consists of alternating aluminum (Al) and silicon carbide (SiC) thin films on a silicon (Si) substrate, with the Al/SiC layered structure indented by a conical diamond indenter. It is found that, unlike the homogeneous material where indentation unloading consists of purely elastic recovery, in the multilayered material plastic deformation in the Al layers continues to occur upon unloading and subsequent loading/unloading operations. With each additional cycle the indenter penetrates deeper into the composite. The modeling results are in qualitative agreement with the actual cyclic nanoindentation experiment conducted on the Al/SiC nanolayers.
机译:使用有限元方法对金属/陶瓷纳米复合材料的压痕行为进行了数值研究。注意力集中在固定最大和最小载荷下的循环响应,其主要目的是检查受硬质陶瓷层约束的可延展金属中不断发展的塑性变形。轴对称模型由硅(Si)基板上的交替的铝(Al)和碳化硅(SiC)薄膜组成,Al / SiC层状结构由锥形金刚石压头压痕。已经发现,与压痕卸载仅由弹性恢复构成的均质材料不同,在多层材料中,在卸载和随后的加载/卸载操作中,Al层中的塑性变形继续发生。每增加一个循环,压头就会更深地渗入复合材料中。模拟结果与在Al / SiC纳米层上进行的实际循环纳米压痕实验在质量上吻合。

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